Application of deep learning models for detection of subdural hematoma: a systematic review and meta-analysis

被引:5
作者
Abdollahifard, Saeed [1 ,2 ]
Farrokhi, Amirmohammad [1 ,2 ]
Mowla, Ashkan [3 ]
机构
[1] Shiraz Univ Med Sci, Med Sch, Shiraz, Iran
[2] Shiraz Univ Med Sci, Ctr Neuromodulat & Pain, Shiraz, Iran
[3] Univ Southern Calif, Neurol Surg, Los Angeles, CA 90033 USA
关键词
Subdural; Intervention; Technology; INTRACRANIAL HEMORRHAGE; NEURAL-NETWORK; EPIDEMIOLOGY; STATISTICS; DIAGNOSIS;
D O I
10.1136/jnis-2022-019627
中图分类号
R445 [影像诊断学];
学科分类号
100207 ;
摘要
BackgroundThis study aimed to investigate the application of deep learning (DL) models for the detection of subdural hematoma (SDH). MethodsWe conducted a comprehensive search using relevant keywords. Articles extracted were original studies in which sensitivity and/or specificity were reported. Two different approaches of frequentist and Bayesian inference were applied. For quality and risk of bias assessment we used Quality Assessment of Diagnostic Accuracy Studies-2 (QUADAS-2). ResultsWe analyzed 22 articles that included 1,997,749 patients. In the first step, the frequentist method showed a pooled sensitivity of 88.8% (95% confidence interval (CI): 83.9% to 92.4%) and a specificity of 97.2% (95% CI 94.6% to 98.6%). In the second step, using Bayesian methods including 11 studies that reported sensitivity and specificity, a sensitivity rate of 86.8% (95% CI: 77.6% to 92.9%) at a specificity level of 86.9% (95% CI: 60.9% to 97.2%) was achieved. The risk of bias assessment was not remarkable using QUADAS-2. ConclusionDL models might be an appropriate tool for detecting SDHs with a reasonably high sensitivity and specificity.
引用
收藏
页码:995 / +
页数:8
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